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Optimal feature level fusion based ANFIS classifier for brain MRI image classification

机译:基于优化特征融合的ANFIS分类器用于脑MRI图像分类

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The cases identified with Brain tumor have increased with respect to time owing to various reasons. One of the major challenging issues can be defined by incorporating image processing along with data mining models as classification approach. There are various procedures as of now exhibited for segmentation of brain tumor effectively. In any case, it is as yet unequivocal to distinguish the brain tumor from MR images. In this new tumor classifying, considering two significant models, such as Feature Selection (FS) and Machine Learning classification techniques, are extremely valuable for distinguishing and visualizing the tumor in the MRI brain images; it is classified using Adaptive Neuro-Fuzzy Interface System (ANFIS). For better classification of image, Optimal Feature Level Fusion (OFLF) is considered to fuse low and high-level feature of brain image; from this analysis, the images are classifying as Benign or Malignant. From this implementation of medical images, the experiment results are evaluating performance metrics are compared existing classifiers. From the proposed MRI image classification process the accuracy as 96.23%, sensitivity as 92.3%, and specificity as 94.52%, compared to existing classifier. It is in the working platform of MATLAB that this proposed methodology is implemented.
机译:由于各种原因,鉴定为脑肿瘤的病例在时间上有所增加。可以通过将图像处理与数据挖掘模型结合在一起作为分类方法来定义主要的挑战性问题之一。到目前为止,有多种方法可以有效地分割脑肿瘤。无论如何,将脑肿瘤与MR图像区分开仍然是明确的。在这种新的肿瘤分类中,考虑到两个重要模型,例如特征选择(FS)和机器学习分类技术,对于在MRI脑图像中区分和可视化肿瘤非常有价值;使用自适应神经模糊接口系统(ANFIS)对它进行分类。为了更好地对图像进行分类,可以考虑使用最优特征水平融合(OFLF)融合大脑图像的高低特征。根据此分析,图像被分为良性或恶性。从这种医学图像的实现中,实验结果正在评估性能指标,并与现有分类器进行比较。与现有的分类器相比,从提出的MRI图像分类过程中,准确性为96.23%,灵敏度为92.3%,特异性为94.52%。所提出的方法是在MATLAB的工作平台中实现的。

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